Bifunctional S-doping-mediated interfacial gradient electric field for in-situ amplified photoelectrochemical
Bin Li1, Jia Lin2, Cheng Cheng3
1Jiangsu Province Engineering Research Center of Traditional Chinese Medicine Health Preservation, Nanjing University of Chinese Medicine, No.138 Xianlin Avenue, Nanjing, 210023, Jiangsu, China; Department of Biochemistry and Molecular Biology, School of Medicine, Nanjing University of Chinese Medicine, No.138 Xianlin Avenue, Nanjing 210023, Jiangsu, China.
Abstract:
Ultrasensitive chemical reactions at the photoanode interface provide new ideas for the development of novel photoelectrochemical (PEC) immunoassays. Herein, we reported an in situ-promoted all-inorganic semiconductor reaction realizing an ultrasensitive PEC analysis of carcinoembryonic antigen (CEA). Uniform In2O3 nanocubes were synthesized through one-step in situ growth, and composite In2OxS3-x was obtained by one-step post-modification sulfurization, achieving ultra-high light-to-dark current switching ratios (169 times). S doping, on the one hand, lowered the band gap of In2O3 and established a gradient electric field to enhance charge separation, resulting in a substantial enhancement of the photocurrent; on the other hand, it reacted with Cu2+ released from the detection probes during the detection process to further amplify the photocurrent signal. The presence of a built-in gradient electric field of In2OxS3-x was determined by in situ X-ray photoelectron spectroscopy (XPS) and density functional theory (DFT). In the presence of CEA, CuO modified on the detection probe formed Cu2+ by exogenous acidification and therefore caused a sudden crossing of the photocurrent by forming a robust Cu-S bond with the vulcanized photoanode. Under optimized conditions, the developed PEC immunosensing system based on photoanodic interfacial reaction exhibited an ultra-wide operating range (0.05-100 ng mL-1), and an ultra-low limit of detection (13.5 pg mL-1). In conclusion, this work provides a promising in situ ultrasensitive monitoring strategy for efficient PEC bio-immunosensor, expanding the range of potential applications in early cancer analysis and bedside diagnostics.
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